ECONOMIZER CONTROL
The present disclosure provides a method for operating an HVAC system for conditioning air of an inside space. The HVAC system has an economizer configured to control the intake of outside air into an HVAC air stream of the HVAC system. The method includes determining at least two parameters of the air of the inside space, where the at least two parameters are selected from a set of parameters from which an inside air dry bulb temperature, an inside air dew point, an inside air relative humidity, and an inside air enthalpy can be determined, either directly or indirectly. The method also includes determining at least two parameters of the outside air, where the at least two parameters being selected from a set of parameters from which an outside air dry bulb temperature, an outside air dew point, and an outside air enthalpy can be determined, either directly or indirectly. Based on one or more of the inside air dry bulb temperature, the inside air dew point, the inside air relative humidity, and the inside air enthalpy, a determination is made of whether dehumidification of the inside space is needed, and if dehumidification is not needed, the economizer is commanded to increase the intake of outside air into the HVAC air stream if the outside air dry bulb temperature is less than a dry bulb temperature reference, and if the outside air enthalpy is less than an enthalpy reference. If, alternatively, dehumidification is needed, the economizer is commanded to increase the intake of outside air into the HVAC air stream if the outside air enthalpy is less than the enthalpy reference, and if the outside air dew point is less than a dew point reference.
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The disclosure relates generally to Heating, Ventilation, and Air Conditioning (HVAC) systems for conditioning the air of an inside space of a building or other structure, and more particularly, to economizers that are capable of drawing outside air into an HVAC air stream.
BACKGROUNDMost modern buildings use some sort of an HVAC system to control the environment conditions inside of the building. Such HVAC systems can be configured to control a number of different environmental conditions including, for example, temperature, humidity, air quality and/or other environmental conditions, as desired. In many HVAC systems, air from the building's inside space is drawn into return ducts and provided back to the HVAC system, where the return air is conditioned and provided back to the inside space. To meet desired ventilation requirements, some HVAC systems include an exhaust port for exhausting at least some of the return air to the outside environment, and/or an intake port for bringing fresh air into the HVAC system. In some instances, a damper system is provided to control how much return air is exhausted and/or how much outside air is brought into the building. In many instances, the air supplied by the HVAC system to the inside space can be a mixture of fresh outside air and return air, depending on the conditions.
In some HVAC systems, an economizer is provided. The Economizer may, under certain conditions, act as a first stage of cooling to help decrease energy usage of the HVAC system. For example, the economizer may draw in cooler outside air to provide essentially “free” cooling during some cooling cycles. To make good use of an economizer, an HVAC system may benefit from improved economizer control.
SUMMARYThe disclosure relates generally to Heating, Ventilation, and Air Conditioning (HVAC) systems for conditioning the air of an inside space of a building or other structure, and more particularly, to economizers that are capable of drawing outside air into an HVAC air stream. In some methods of the present disclosure, the need for dehumidification (or lack thereof) may be considered in economizer operations.
In an illustrative but non-limiting example, the disclosure provides a method for operating an HVAC system for conditioning air of an inside space. The HVAC system has an economizer configured to control the intake of outside air into an HVAC air stream of the HVAC system. The method includes determining at least two parameters of the air of the inside space, where the at least two parameters are selected from a set of parameters from which an inside air dry bulb temperature, an inside air dew point, an inside air relative humidity, and an inside air enthalpy can be determined, either directly or indirectly. The method also includes determining at least two parameters of the outside air, where the at least two parameters being selected from a set of parameters from which an outside air dry bulb temperature, an outside air dew point, and an outside air enthalpy can be determined, either directly or indirectly. Based on one or more of the inside air dry bulb temperature, the inside air dew point, the inside air relative humidity, and the inside air enthalpy, a determination is made of whether dehumidification of the inside space is needed, and if dehumidification is not needed, the economizer is commanded to increase the intake of outside air into the HVAC air stream if the outside air dry bulb temperature is less than a dry bulb temperature reference, and if the outside air enthalpy is less than an enthalpy reference. If, alternatively, dehumidification is needed, the economizer is commanded to increase the intake of outside air into the HVAC air stream if the outside air enthalpy is less than the enthalpy reference, and if the outside air dew point is less than a dew point reference.
The above summary is not intended to describe each and every disclosed illustrative example or every implementation of the disclosure. The Description that follows more particularly exemplifies the various illustrative embodiments.
The following description should be read with reference to the drawings. The drawings, which are not necessarily to scale, depict selected illustrative embodiments and are not intended to limit the scope of the disclosure. The disclosure may be more completely understood in consideration of the following description of various illustrative embodiments in connection with the accompanying drawings, in which:
The following description should be read with reference to the drawings, in which like elements in different drawings are numbered in like fashion. The drawings, which are not necessarily to scale, depict selected illustrative embodiments and are not intended to limit the scope of the invention. Although examples of construction, dimensions, and materials are illustrated for the various elements, those skilled in the art will recognize that many of the examples provided have suitable alternatives that may be utilized.
As shown, the economizer 130 of the HVAC system 102 may employ one or more dampers to control air flows, sometimes including an exhaust damper 120 to regulate the fraction of the return air stream 112 that is exhausted 121 from the building 104, an intake damper 122 to regulate the flow of an incoming outside air stream 123 into the building 104, and/or a return damper 124 to regulate the flow of the retained return air stream 125 to mix with the incoming outside air stream 123. In some cases, the dampers 120, 122, and/or 124 may be mechanically coupled to open and close in a coordinated manner, but this is not required. For example, in some illustrative embodiments, dampers 120 and 122 may open and close together or in sequence, and damper 124 may open and close in an opposite manner to dampers 120 and 122. When so provided, when damper 122 is opened to allow more of the outside air stream 123 into the building 104, damper 120 may also open to allow a similar amount of the return air stream 112 to be exhausted 121 from the building 104. The return air damper 124 may close as the dampers 120 and 122 open. This arrangement may help balance the pressure inside the HVAC system 102 and building 104. In some illustrative embodiments, more or fewer of the dampers 120, 122, and 124 may be employed, but the teachings of this disclosure may be applied advantageously to any suitable HVAC system including those that having an economizer 130.
In some illustrative embodiments, the dampers 120, 122, 124 and associated duct work may be included in an economizer unit, such as economizer 130 shown in dashed lines in
In some instances, the HVAC system 102 may include a heat exchanger generally shown at 134 to transfer heat energy between the incoming outside air stream 123 and the exhausted air stream 121, which may be useful under some operating conditions.
Decisions for when and how to use the economizer 130 may depend on strategies that consider current and/or past conditions of outside air and/or indoor air. The HVAC system 102 of
By not considering humidity, a typical current economizer strategy may be overly conservative and base the economization decision by comparing outside conditions to a dry bulb temperature or enthalpy reference value (or “reference”) that results in missed economization opportunities. One example of a potential condition that may lead to an overly conservative strategy is that of cool moist outdoor air. Outdoor air that is cooler than the air in the inside space is desirable for cooling, but if it is too moist, it may raise indoor humidity levels to unacceptable levels from the viewpoint of comfort, mold growth, etc. On the other hand, if the indoor air conditions are dry enough, it may be tolerable to take in moist outside air so long as the outside air helps cool the inside without raising the humidity level excessively. Without the benefit of humidity information, a conservative dry bulb temperature and/or enthalpy reference may be established to guard against the former hazard, which then may prevent exploiting the later opportunity.
Another example of a potential condition that may lead to an overly conservative strategy is that of hot dry outdoor air. Conventionally, outside air that is warmer than the inside space is not considered desirable because of the energy required to remove the extra sensible heat from the air, and a conservative references may be established accordingly to minimize its intake. However, when indoor dehumidification is needed, significantly drier outside air, despite being warmer, may actually reduce the energy required by the HVAC system 102 by lowering the latent heat of the inside air. The opportunity to benefit from this latter situation may be lost with a conservative reference intended to prevent intake of warmer air.
In contrast with the current conservative economizer strategies, the present disclosure presents methods of operating HVAC systems 102 with economizers 130 that incorporate strategies that benefit from considering humidity conditions, and whether indoor dehumidification is needed or not. These strategies, methods, and devices may beneficially expand the range of conditions under which economizers may be employed, which may result in more efficient and/or more effective HVAC system operation.
The HVAC system of
A controller, such as controller 142, may be provided to control the HVAC system 102. Controller 142 may be any suitable controller. It may be a controller for the entire HVAC system 102, or any appropriate subset or subsets of the HVAC system 102 such as the economizer 130. Physically, it may be a stand-alone unit or units, or it may be integrated with hardware, such as economizer 130. Controller 142 may be configured to receive information from any suitable source, such as the inside 138, return 140, and/or outside 136 sensors, and it may be configured to issue commands to any appropriate component of the HVAC system 102, such as dampers 120, 122, 124, HVAC unit 106, etc. Controller 142 may be configured and programmed in any suitable manner.
In some illustrative methods of operating an HVAC system, such as the HVAC system 102 of
When dehumidification is not desired, some illustrative methods may compare outside air parameters to reference values, or references, to determine appropriate operation of the economizer 130. Illustrative references (e.g. reference values) are discussed further elsewhere herein.
A command to increase the intake of outside air may be executed, for example, by adjusting one or more of the dampers 120, 122, 124 to increase the fraction of the incoming outside airstream 123 making up the mixed air stream 132 (i.e., HVAC air stream) of
References, or reference values, may be established, set, defined, or otherwise determined in any suitable manner, for any appropriate reason. In some illustrative embodiments, the dry bulb temperature reference may correspond to a dry bulb temperature setpoint, and an enthalpy reference may correspond to an enthalpy setpoint. In some cases, the enthalpy reference may not correspond directly to an enthalpy setpoint, but may instead depend at least in part on a dry bulb temperature setpoint and a relative humidity setpoint. In some illustrative embodiments, one or more of the setpoints may be setpoints for inside air parameters that the HVAC system is intended to maintain or attempt to maintain.
Basing economization decisions on fixed references, such as dry bulb temperature and enthalpy references, may result in an economizer increasing the intake of outside air when it has been determined to be favorable to do so. For example, in the example shown in
In a differential economizer strategy, outside air parameters may be compared with references based upon current indoor air parameters, rather than fixed references. In some illustrative embodiments, either or both of the dry bulb temperature reference and the enthalpy reference may depend upon the inside air dry bulb temperature and the inside air enthalpy, respectively.
In some illustrative embodiments, either or both of the dry bulb temperature reference and the enthalpy reference may have the values of the inside air dry bulb temperature and the inside air enthalpy, respectively. When the dry bulb temperature reference corresponds to the inside air dry bulb temperature, and the enthalpy reference corresponds to the inside air enthalpy, the hatched portion of the psychrometric chart of
By comparing outside air parameters with actual inside air parameters in a differential strategy, an economizer decision to increase the intake of outside air may be made even when there is a smaller advantage to doing so, in contrast to the case of fixed references, where it may be necessary for the advantage to rise above a more sizable threshold before economization may be invoked. Another possible situation that a differential strategy may be able to exploit advantageously over a fix reference strategy is when inside air set points are varied according to a schedule, such as one intended to save energy according to the occupied or unoccupied schedule for a building. Air unavailable for free cooling during an occupied period with a lower inside dry bulb temperature may be useable for free cooling during an unoccupied, higher dry bulb temperature period. These situations may represent significant advantages for differential economizer strategies.
Turning now to
A command to increase the intake of outside air may be executed by, for example, adjusting one or more of the dampers 120, 122, 124, as discussed in greater detail elsewhere herein. The intake of outside air into the HVAC airstream may be increased to any suitable degree, and may depend on any appropriate considerations. For example, it may be desired to control the increased intake of hot dry outside air such that the mixed air stream 132 dry bulb temperature falls within the capability of HVAC unit 106 to be cooled to a specified dry bulb temperature before being supplied as conditioned air 116 to the inside space of building 104. In some illustrative embodiments, such a specified dry bulb temperature may be equal to or less than the inside dry bulb temperature.
If outdoor air parameters fall outside the hatched region of parameter space when dehumidification is needed—that is, if either the outside air enthalpy is greater than the enthalpy reference or the outside air dew point is greater than the dew point reference—then the economizer 130 may be commanded to minimize the intake of outside air into the HVAC air stream. The command to minimize intake of outside air may be executed, for example, by adjusting one or more of the dampers 120, 122, 124, as discussed in greater detail elsewhere herein. As also mentioned elsewhere herein, economization may be curtailed or minimized when the outside dry bulb temperature exceeds a dry bulb temperature limit, if desired.
Similarly to how other references may be established, set, defined, or otherwise determined, the dew point reference may be a dew point setpoint, or it may be an inside air dew point value. A differential economizer strategy may be employed here as well as in the case of when dehumidification is not needed. When the dew point reference corresponds to the inside air dew point, and the enthalpy reference corresponds to the inside air enthalpy, the hatched portion of the psychrometric chart of
Returning to the dehumidification determination at 410, if dehumidification is needed, the illustrative method 400 proceeds to block 435, where the outside dew point is compared to a dew point reference. If the outside dew point is not less than the dew point reference, the illustrative method 400 proceeds to minimizing intake of outside air by the economizer at block 420. If the outside dew point is less than the dew point reference, the illustrative method 400 proceeds to block 440, where the outside dry bulb temperature is compared to a dry bulb temperature limit. If the outside dry bulb temperature is not less than the dry bulb temperature limit, the illustrative method 400 proceeds to minimizing intake of outside air by the economizer at block 420. If the outside dry bulb temperature is less than the dry bulb temperature limit, the illustrative method 400 proceeds to block 425, where the outside enthalpy is compared to the enthalpy reference, as discussed already, and from block 425 proceeds either to minimizing intake at block 420 or increasing intake at block 430.
A number of methods of the present disclosure for operating HVAC systems having economizers consider outside and inside air parameters when making economization decisions, as discussed herein. Obtaining usable data on outside and inside air parameters, therefore, may significantly contribute to the ability to practice these methods. In some illustrative embodiments, inside 138, return 140, and outside 136 sensors, as illustrated in
In some illustrative embodiments, one or more mixed air stream parameters are provided by one or more mixed air stream sensors 144. Data provided by the one or more mixed air stream sensors 144 may be used for economizer control. In some cases, the data from mixed air stream sensors 144 may be used in addition to, or in the absence of, data from one or more air parameter sensors such as inside 138, return 140, and outside 136 sets of sensors. In some illustrative embodiments, one or more mixed air stream sensors 144 may provide the only data for air parameters in an HVAC system. In some illustrative embodiments, mixed air stream sensors 144 may provide data on air parameters as an alternative or backup for absent or questionable data from damaged, missing, failed, or otherwise unusable sensors. Mixed air stream sensors may be installed at the time of manufacture by an HVAC equipment manufacturer, as compared to sensors such as outside air sensors that may need to be installed in the field at the time of system installation. HVAC systems including mixed air stream sensors and methods of controlling or operating such systems are discussed further herein.
In relation to
In some embodiments, one or more of the dampers 120, 122, 124 may be positioned so that the mixed air stream 132 includes essentially none of retained return air stream 125, such that the mixed air stream may then essentially be composed entirely of incoming outside air 123. In such a configuration, mixed air sensors 144 may be used to measure parameters of the incoming outside air stream 123, potentially obviating, in whole or in part, the need for outside air sensors 136. Alternately, it may be possible to configure the dampers 120, 122, 124 so that the mixed air stream 132 includes essentially none of incoming outside air stream 123, such that the mixed air stream may then essentially be composed entirely of retained return air stream 125. In such a configuration, mixed air sensors 144 may be used essentially to measure parameters of the retained return air stream 125, potentially obviating, in whole or in part, the need for return air sensors 140 and/or inside air sensors 138. In some illustrative embodiments, dampers 120, 122, 124 may be temporarily configured in one or the other of these configurations (i.e., such that mixed air stream 132 is essentially composed entirely of incoming outside air stream 123 or return air stream 125) to effectively allow measurement of outside or inside air conditions with the one or more mixed air sensors 144.
In general, the configuration of dampers 120, 122, 124 may result in a mixed air stream 132 that may include any arbitrary achievable mixing ratio of incoming outside air stream 123 and retained return air stream 125.
In situations when dampers 120, 122, 124 are configured such that the mixed air stream 132 is composed of a mixture of incoming outside air stream 123 and return air stream 112 (and not essentially one or the other exclusively), it may be possible to use mixing equations to determine one or more parameters of air that is not directly sampled by any sensors by interpreting one or more air parameters determined from the mixed air sensors 144 along with other information such as damper position. In one example, the inside dry bulb temperature may already be known (by any means, for example, from inside air sensors 138, return air sensors 140, or from mixed air sensors 144 at a different time when the mixed air stream 132 is essentially composed entirely of retained return air stream 125). The mixed air dry bulb temperature may be measured by one or more mixed air sensors 144, and the mixing ratio of the incoming outside air stream 123 to the retained return air stream 125 may be known by, for example, the current damper positions. With this information, the outside air dry bulb temperature may be calculated from mixing equations. While dry bulb temperature was used in this example, other parameters or combinations of parameters may be used.
In another example, mixed air dry bulb temperature and relative humidity may be measured in both of a first and second damper configuration, for example, corresponding to points 1 and 2 of
Knowledge of mixing ratios may be obtained in any appropriate way. For example, mixing ratios may be related to known damper positions through calculations or lookup tables, which may be based upon theoretical analysis or prior empirical measurement under a variety of conditions. Pressure and/or air flow measurements in different air streams may be considered as well.
The determining step at block 630 may be carried out in any appropriate way, and may include considering any appropriate criteria, including those discussed herein in relation to
In some illustrative examples, the determining block 630 may be based upon first and second measures related to the temperature of the mixed air stream. In some illustrative examples, the determining block 630 may be based upon first and second measures related to the humidity of the mixed air stream, either in combination with measures related to temperature or without consideration of temperature measures.
In some illustrative examples, the determining step 630 may be based upon measures of mixed air parameters without necessarily determining outside, return, and/or inside air parameters. For example, as discussed elsewhere herein in relation to differential economization strategies in situations when dehumidification is not needed, if the outside air has a lower dry bulb temperature and/or enthalpy than the inside/return air, then economization may be considered desirable, as increased intake of outside air into the mixed air stream desirably results in lower dry bulb temperature and enthalpy for the mixed air stream compared to a mixed air stream having a lesser intake of outside air into the mixed air stream. Thus, in some illustrative embodiments, when dehumidification is not needed, determining block 630 may essentially incorporate these observations about mixed air parameters. If, at block 620, the dampers are positioned to increase the mixing ratio of incoming outside air to return air, and the second measures reflect lower dry bulb temperature and enthalpy for the mixed air stream than do the first measures, then the determining block 630 may indicate economizer usage as desirable and may call for increased admission of outside air into the economizer during subsequent HVAC system operation.
Analogous criteria may be applied when, at block 620, the dampers are positioned to decrease the mixing ratio. In that case, the first mixing ratio would reflect a greater proportion of outside air compared to the second mixing ratio, and the determining block 630 may call for increased admission of outside air into the economizer during subsequent HVAC system operation if the second measures reflect higher dry bulb temperature and enthalpy for the mixed air stream than do the first measures. In some illustrative embodiments, the differences between dry bulb temperatures and/or enthalpies of the first and second measures may be required to exceed threshold temperature and/or enthalpy differences for economizer usage to be indicated as being desirable. If any of the dry bulb temperature or enthalpy conditions are not met, then economizer usage may be indicated as not desirable.
In some illustrative embodiments, analogous considerations may apply when dehumidification is needed, with, for example, determinations of the desirability or not of economizer usage based upon differences (possibly requiring such differences to exceed thresholds) in dew point and/or entropy of a mixed air stream when dampers are adjusted from first to second configurations, with attendant changes in first and second mixing ratios.
Measurement of mixed air properties may allow economizer strategies to incorporate more finely-tuned control of mixing of incoming outside air and return air. For example, as discussed elsewhere herein, when dehumidification is not needed, cooler but more humid outside air may be taken into the mixed airstream to provide free cooling, despite the resulting increase in inside humidity. (See, for example, the discussion of the doubled-hatched region of
The present disclosure provides a number of illustrative methods of controlling HVAC systems and/or economizer, assessing the suitability of using outside air in an economizer, and so on. These methods may consider parameters of air such as outside, inside, return, and mixed air, and base economizer operations, etc., on those parameters. As various air parameters both outside and inside are subject to change over time, it may be desirable to repeat steps of the methods disclosed herein from time to time, so that, for example, economization decisions can be made with the benefit of recent data. In some illustrative embodiments, air parameter determinations and economization decisions may be performed at regular time intervals. In some illustrative embodiments, air parameter determinations and economization decisions may be performed before, during, or otherwise as part of each response of an HVAC system to a call for cooling and/or dehumidification.
The disclosure should not be considered limited to the particular examples described above, but rather should be understood to cover all aspects of the invention as set out in the attached claims. Various modifications, equivalent processes, as well as numerous structures to which the invention can be applicable will be readily apparent to those of skill in the art upon review of the instant specification.
Claims
1. A method for operating an HVAC system for conditioning air of an inside space, the HVAC system having an economizer configured to control the intake of outside air into an HVAC air stream of the HVAC system, the method comprising:
- determining at least two parameters of the air of the inside space, the at least two parameters being selected from a set of parameters from which an inside air dry bulb temperature, an inside air dew point, an inside air relative humidity, and an inside air enthalpy can be determined, either directly or indirectly;
- determining at least two parameters of the outside air, the at least two parameters being selected from a set of parameters from which an outside air dry bulb temperature, an outside air dew point, and an outside air enthalpy can be determined, either directly or indirectly;
- determining whether dehumidification of the inside space is needed based on one or more of the inside air dry bulb temperature, the inside air dew point, the inside air relative humidity, and the inside air enthalpy;
- if dehumidification is not needed, commanding the economizer to increase the intake of outside air into the HVAC air stream if the outside air dry bulb temperature is less than a dry bulb temperature reference, and if the outside air enthalpy is less than an enthalpy reference.
2. The method of claim 1 further comprising:
- if dehumidification is not needed, commanding the economizer to minimize the intake of outside air into the HVAC air stream if either: (1) the outside air dry bulb temperature is greater than the dry bulb temperature reference; or (2) the outside air enthalpy is greater than the enthalpy reference.
3. The method of claim 1, further comprising:
- if dehumidification is needed, commanding the economizer to increase the intake of outside air into the HVAC air stream if the outside air enthalpy is less than the enthalpy reference, and if the outside air dew point is less than a dew point reference.
4. The method of claim 3 further comprising:
- if dehumidification is needed, commanding the economizer to minimize the intake of outside air into the HVAC air stream if either: (1) the outside air enthalpy is greater than the enthalpy reference; or (2) the outside air dew point is greater than the dew point reference.
5. The method of claim 3, further comprising:
- if dehumidification is needed, commanding the economizer to increase the intake of outside air into the HVAC air stream if the outside air enthalpy is less than the enthalpy reference, if the outside air dew point is less than a dew point reference, and if the outside air dry bulb temperature is below a dry bulb temperature limit.
6. The method of claim 1, wherein the dry bulb temperature reference corresponds to a dry bulb temperature setpoint, and the enthalpy reference corresponds to an enthalpy setpoint.
7. The method of claim 1, wherein the enthalpy reference depends at least in part on a dry bulb temperature setpoint and a relative humidity setpoint.
8. The method of claim 1, wherein the dry bulb temperature reference is dependent upon the inside air dry bulb temperature.
9. The method of claim 1, wherein the enthalpy reference is dependent upon the inside air enthalpy.
10. The method of claim 3, wherein the dew point reference corresponds to a dew point setpoint.
11. The method of claim 3, wherein the dew point reference is dependent upon the inside air dew point.
12. The method of claim 1, wherein determining at least two parameters of the air of the inside space comprises determining the at least two parameters of the air of the inside space that is passing though a return air stream of the HVAC system.
13. The method of claim 1, wherein the step of determining whether dehumidification is needed includes comparing the inside air dew point with a dew point setpoint, wherein dehumidification is determined to be needed when the inside air dew point exceeds the dew point setpoint, and dehumidification is determined to not be needed when the dew point setpoint exceeds the inside air dew point.
14. The method of claim 1, wherein the step of determining whether dehumidification is needed includes comparing the inside air relative humidity with a relative humidity setpoint, wherein dehumidification is determined to be needed when the inside air relative humidity exceeds the relative humidity setpoint, and dehumidification is determined to be not needed when the relative humidity setpoint exceeds the inside air relative humidity.
15. A method for economically operating an HVAC system for conditioning air in an inside space, the HVAC system having an economizer configured to control the intake of outside air that is mixed with a return air stream to form a mixed air stream, the method comprising:
- determining whether dehumidification of the air in the inside space is needed;
- when dehumidification is not needed, increasing the intake of the outside air if mixing the outside air with the return air will result in a mixed air stream dry bulb temperature that is lower than a return air stream dry bulb temperature, without resulting in a mixed air stream enthalpy becoming greater than a return air stream enthalpy.
16. The method of claim 15, further comprising:
- when dehumidification is needed, increasing the intake of the outside air if mixing the outside air with the return air stream will result in a mixed air stream dew point that is lower than a return air stream dew point, without resulting in a mixed air stream enthalpy becoming greater than a return air stream enthalpy.
17. The method of claim 15, further comprising:
- minimizing the intake of the outside air, if mixing the outside air with the return air stream would result in a mixed air stream meeting any one or more of the following conditions:
- (a) the mixed air stream enthalpy becoming greater than the return air stream enthalpy;
- (b) when dehumidification is not needed, the mixed air stream dry bulb temperature becoming greater than the return air stream dry bulb temperature; or
- (c) when dehumidification is needed, the mixed air stream dew point becoming greater than the return air stream dew point.
18. An HVAC system for economically conditioning air of an inside space, comprising:
- an economizer configured to control the intake of outside air into an HVAC air stream of the HVAC system;
- a controller configured to control the relative amount of outside air that is provided by the economizer to the HVAC air stream;
- one or more sensors for measuring at least two parameters of the outside air, the at least two parameters being selected from a set of parameters from which an outside air dry bulb temperature, an outside air dew point, and an outside air enthalpy can be determined, either directly or indirectly;
- one or more sensors for measuring at least two parameters of the air of the inside space, the at least two parameters being selected from a set of parameters from which an inside air dry bulb temperature, an inside air dew point, an inside air relative humidity, and an inside air enthalpy can be determined, either directly or indirectly;
- wherein, if dehumidification is needed, the controller is configured to increase the intake of outside air into the HVAC air stream if the outside air enthalpy is less than an enthalpy reference and if the outside air dew point is less than a dew point reference.
19. The HVAC system of claim 18 wherein, if dehumidification is not needed, the controller is configured to increase the intake of outside air into the HVAC air stream if the outside air dry bulb temperature is less than a dry bulb temperature reference and if the outside air enthalpy is less than an enthalpy reference.
20. The HVAC system of claim 19, wherein the controller is configured minimize the intake of outside air into the HVAC air stream if any of the following conditions are met:
- (a) if the outside enthalpy is greater than the inside enthalpy;
- (b) if dehumidification is not needed, and if an outside dry bulb temperature is greater than the inside dry bulb temperature; or
- (c) if dehumidification is needed, and if the outside dew point is greater than the inside dew point.
Type: Application
Filed: Jan 12, 2010
Publication Date: Jul 14, 2011
Patent Grant number: 9097432
Applicant: Honeywell International Inc. (Morristown, NJ)
Inventors: Todd Kreft (Richfield, MN), Adrienne Thomle (Plymouth, MN), Cory Grabinger (Maple Grove, MN), Paul Wacker (Plymouth, MN)
Application Number: 12/686,189
International Classification: F24F 3/14 (20060101); G05B 15/00 (20060101);